Fiber product

A textile product with a thin fabric thickness is achieved by using a twisted yarn of tungsten wire and chemical fibers, maintaining high cut resistance through load distribution and synergistic reinforcement, overcoming the thickness compromise of conventional products.

JP2026013584APending Publication Date: 2026-01-29PANASONIC INTELLECTUAL PROPERTY MANAGEMENT CO LTD
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Patent Information

Application Number
JP2024114023
Authority / Receiving Office
JP · JP
Patent Type
Applications
Current Assignee / Owner
Filing Date
2024-07-17
Publication Date
2026-01-29

AI Technical Summary

Technical Problem

Conventional cut-resistant textile products incorporating reinforcing fibers like para-aramid or ultra-high molecular weight polyethylene fibers increase thickness, necessitating a reduction in fiber amount to maintain user convenience, which compromises cut resistance.

Method used

A textile product using a twisted yarn composed of a tungsten wire with a diameter of 22 μm or less and a bundle of chemical fibers, achieving a maximum tensile strength of 1900 N or more, is knitted to maintain thin fabric thickness without reducing cut resistance.

Benefits of technology

The combination of tungsten wires and chemical fibers in the twisted yarn distributes load and enhances cut resistance, allowing for a thin, high-cut-resistant textile product with a cutting force of 30 Newtons or more.

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Abstract

To provide a fiber product having a thin fabric thickness without lowering cut resistance.SOLUTION: A fiber product includes a knitted fabric knitted by a knitting machine using twisted yarn 2 including tungsten wire 3 having a wire diameter less than or equal to 22 μm and a bundle of chemical fibers 4 which are reinforcing fibers, and a product of a maximum tensile force of the entire bundle of chemical fibers 4 used for twisted yarn 2 and a gauge number of the knitting machine is greater than or equal to 1900N.SELECTED DRAWING: Figure 1
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Description

[Technical Field]

[0001] The present invention relates to textile products, and more particularly to cut-resistant knitted textile products. [Background technology]

[0002] Cut-resistant textile products, which can withstand cuts from sharp objects such as knives without breaking, are known. Examples of such textile products include cut-resistant work gloves. Conventionally, to achieve cut-resistant textile products, cut-resistant fibers, i.e., reinforcing fibers (reinforcing fibers), such as organic chemical fibers such as para-aramid fibers or ultra-high molecular weight polyethylene fibers, or inorganic fibers such as glass fibers or stainless steel wires, have been incorporated into twisted yarns, which have been used to create woven or knitted fabrics. For example, a textile product made of twisted yarns containing metal fibers made of tungsten wires has been proposed (Patent Document 1). [Prior art documents] [Patent documents]

[0003] [Patent Document 1] Patent No. 6288623 Summary of the Invention [Problem to be solved by the invention]

[0004] Generally, when the above-mentioned reinforcing fibers are included in the twisted yarn, the thickness of the textile product increases. Therefore, in order to reduce the thickness of the fabric in consideration of user convenience such as ease of use, it is necessary to reduce the amount of reinforcing fibers used, which inevitably reduces the cut resistance of the textile product.

[0005] The present invention is intended to solve these problems, and has an object to provide a textile product having a thin fabric thickness without reducing cut resistance. [Means for solving the problem]

[0006] In order to achieve the above object, the textile product of the present invention includes a knitted fabric knitted on a knitting machine using a twisted yarn made of a tungsten wire having a wire diameter of 22 μm or less and a bundle of chemical fibers as reinforcing fibers, and the product of the maximum tensile strength (unit: N (Newton)) of the entire bundle of chemical fibers used in the twisted yarn and the gauge number of the knitting machine is 1900 N or more. [Effects of the Invention]

[0007] According to the present invention, a textile product having a thin fabric thickness can be realized without reducing cut resistance. [Brief explanation of the drawings]

[0008] [Figure 1] FIG. 1 is an external view of a glove according to an embodiment. [Figure 2] FIG. 2 is a schematic diagram of a twisted yarn used in a glove according to an embodiment. [Figure 3] FIG. 3 shows a modified example of the twisted yarn. DETAILED DESCRIPTION OF THE INVENTION

[0009] Hereinafter, embodiments of the present disclosure will be described with reference to the drawings. Note that each of the embodiments described below represents a specific example of the present disclosure. Therefore, the numerical values, shapes, materials, components, component placement positions, and connection configurations shown in the following embodiments are merely examples and are not intended to limit the present disclosure. Therefore, among the components in the following embodiments, components that are not recited in independent claims will be described as optional components. Note that each figure is a schematic diagram and is not necessarily a precise illustration.

[0010] (Embodiment) First, a glove 1 according to an embodiment will be described with reference to Fig. 1. Fig. 1 is an external view of a glove 1 according to an embodiment. Note that Fig. 1 shows mesh only at the tips of the thumb and index finger, but the entire glove 1 is mesh-like.

[0011] 1, the glove 1 has a palm portion and five fingers. As an example, the glove 1 is a work glove or a work glove.

[0012] Glove 1 is an example of a textile product. Specifically, glove 1 is made of a knitted fabric knitted by a knitting machine using twisted yarn 2. In this embodiment, the entire glove 1 is made of a knitted fabric. Glove 1 can be produced, for example, by knitting the twisted yarn 2 as a knitting yarn with a predetermined gauge using a knitting process such as stockinette knitting.

[0013] As shown in FIG. 2, the twisted yarn 2 is composed of a tungsten wire 3 and a bundle of chemical fibers 4 .

[0014] The tungsten wire 3 used in the twisted yarn 2 is a metal fiber that functions as a reinforcing fiber (reinforcing fiber). Specifically, the tungsten wire 3 is a metal wire (metal wire rod). In this embodiment, the twisted yarn 2 includes one tungsten wire 3. In other words, the metal wire used in the twisted yarn 2 is only a single tungsten wire 3.

[0015] The twisted yarn 2 may have a plurality of tungsten wires 3. In this case, the plurality of tungsten wires 3 may be parallelly drawn or may be a composite wire formed by twisting a plurality of tungsten wires together. When using a plurality of tungsten wires 3, it is preferable that the number of tungsten wires 3 is three or less, since more than three wires will cause stiffness in the textile product.

[0016] The tungsten wire 3 may be made of pure tungsten or a tungsten alloy containing tungsten as the main component. The purity of the tungsten in the tungsten wire 3 made of pure tungsten is 99.9% or more. When the tungsten wire 3 is made of a tungsten alloy, the proportion of tungsten contained in the tungsten alloy is, for example, 95% or more, but is not limited to this. In this embodiment, the tungsten wire 3 is made of pure tungsten.

[0017] The wire diameter (diameter) of the single tungsten wire 3 is 22 μm or less. In this case, the wire diameter of the tungsten wire 3 should preferably have a tolerance of 18 μm±20%. In other words, the wire diameter of the tungsten wire 3 should preferably be 14.4 μm or more and 21.6 μm or less. In this embodiment, a single tungsten wire 3 having a wire diameter of 18 μm is used.

[0018] A tungsten wire 3 with such a small diameter can be produced, for example, by the following method: First, tungsten powder with a particle size of 5 μm is press-molded and sintered to form an ingot, and then the tungsten ingot is formed into a wire by swaging, which forges and compresses the tungsten from the periphery and stretches it.After that, the wire is repeatedly drawn (wiredrawn) using a plurality of wiredrawing dies with gradually smaller hole diameters to cause plastic deformation, thereby producing a tungsten wire 3 with a diameter of 22 μm or less.

[0019] The chemical fibers 4 used in the twisted yarn 2 are reinforcing fibers with high tensile strength. That is, the twisted yarn 2 is constructed by combining tungsten wires 3 and chemical fibers 4 with high tensile strength as reinforcing fibers. The bundle of chemical fibers 4 may be constructed of a single type of chemical fiber 4, or may be a composite fiber in which multiple types of chemical fibers 4 are twisted or aligned. Note that the characteristics of the chemical fibers 4 can be more easily brought out when the bundle of chemical fibers 4 is constructed of a single type of chemical fiber 4.

[0020] The chemical fiber 4, which is a reinforcing fiber with high tensile strength, can be para-aramid fiber, ultra-high molecular weight polyethylene fiber, high-strength polyarylate fiber, PBO fiber, carbon fiber, etc. In this embodiment, ultra-high molecular weight polyethylene fiber is used as the chemical fiber 4.

[0021] "Fineness" is used to indicate the thickness of a bundle of chemical fibers 4. The fineness of a bundle of chemical fibers 4 is the amount of chemical fibers 4 actually used. Generally, bundles of chemical fibers 4 have complex or irregular cross-sectional shapes, or contain air inside, making it impossible to simply measure their diameter or cross-sectional area. For this reason, the "fineness" of length per unit weight (such as count) or weight per unit length (such as denier or decitex) has traditionally been used to measure the thickness of a bundle of chemical fibers 4. Decitex (dtex) is primarily used for chemical fibers. It should be noted that even if the decitex is the same, the density varies depending on the type of chemical fiber, which results in different total cross-sectional areas and therefore different apparent thicknesses.

[0022] Chemical fibers 4 are composed of bundles of even thinner long fiber filaments or bundles of short fiber staples. Chemical fibers 4 are made into yarn by twisting filaments together or spinning staples. Because of this structure, the cross-sectional shape of chemical fibers 4 is easily deformed by lateral loads. This makes it difficult to measure the diameter of chemical fibers 4. Therefore, the thickness of the bundles of chemical fibers 4 is also expressed in decitex, which is the fineness.

[0023] Structurally, twisted yarn 2 is a thicker yarn made by further combining multiple thin yarns. By making twisted yarn 2 into a thicker yarn, it becomes a thickness suitable for woven or knitted fabrics. This allows it to be used to produce textile products that we see every day, such as clothing.

[0024] In this embodiment, the twisted yarn 2 is a covered yarn produced by covering processing. Specifically, the twisted yarn 2 includes a tungsten wire 3 and a bundle of chemical fibers 4, and further includes a sheath yarn 5 that covers the tungsten wire 3 and the bundle of chemical fibers 4.

[0025] For example, a tungsten wire 3 and a bundle of chemical fibers 4 are aligned (side by side) to form a core yarn, and a covered fiber is spirally wound around this core yarn as a sheath yarn 5. In this embodiment, the twisted yarn 2 is a double-covered yarn, and the sheath yarn 5 is wound twice in opposite directions around the core yarn made of the tungsten wire 3 and the bundle of chemical fibers 4. In other words, two sets of sheath yarns 5 are wound around the core yarn made of the tungsten wire 3 and the bundle of chemical fibers 4.

[0026] 2, the tungsten wire 3 is arranged outside the bundle of chemical fibers 4, but this is not limiting. For example, the tungsten wire 3 may be arranged inside the bundle of chemical fibers 4. In other words, the tungsten wire 3 may be surrounded by a plurality of chemical fibers 4.

[0027] The sheath yarn 5, which is the covering fiber, is a chemical fiber or natural fiber that does not have a very high tensile strength. In other words, the chemical fiber that constitutes the sheath yarn 5 has a lower tensile strength than the chemical fiber 4 that constitutes the core yarn. As an example, a polyester yarn or a nylon yarn is used as the sheath yarn 5. In this case, the sheath yarn 5 may be made of only polyester yarn or only nylon yarn, or may be made of a composite yarn of polyester yarn and nylon yarn.

[0028] The sheath yarn 5 may be composed of only chemical fibers or natural fibers, but is not limited to this. For example, the sheath yarn 5 may contain, in addition to chemical fibers or natural fibers, a metal wire such as a tungsten wire as a covering fiber. That is, both the core yarn and the sheath yarn may contain a tungsten wire. The covering fiber used for the sheath yarn 5 may contain a chemical fiber with high tensile strength, similar to the chemical fiber 4. That is, both the core yarn and the sheath yarn may contain a chemical fiber with high tensile strength (i.e., a reinforcing fiber). The core yarn may contain a stretchable polyurethane fiber or nylon fiber. In this embodiment, the tensile strength of the covering fiber of the sheath yarn 5 is lower than that of the chemical fiber 4, but this is not limited to this. That is, a chemical fiber having the same tensile strength as the chemical fiber 4 may be used as the covering fiber of the sheath yarn 5. That is, a chemical fiber with high tensile strength may be contained in both the core yarn and the sheath yarn.

[0029] As described above, glove 1 is a knitted fabric. Knitted fabrics are textile products that are finished into a flat shape by, for example, making a loop with knitting yarn, passing the knitting yarn through the loop, and then repeatedly making another loop. When the knitted fabric is a garment such as a sweater, sock, or glove, these garments are mass-produced by machine knitting using a knitting machine. The tightness of the stitches in a knitted fabric is called the knitting density, and the higher the knitting density, the denser the knitted fabric. The gauge number of the knitting machine has a significant effect on the knitting density. The gauge number is the number of knitting needles per inch (25.4 mm). Generally, the gauge number of knitting machines used to make work gloves is 7 or 10, and the gauge number of knitting machines used to make work gloves is 13, for example.

[0030] There is a loose relationship between the gauge number and the fineness of the knitting yarn (twisted yarn 2 in this embodiment). For example, it is not possible to knit an extremely thick knitting yarn densely with a high gauge number. On the other hand, it is also difficult to knit a thin knitting yarn loosely with a low gauge number. Generally, the gauge number should be set to about the count of the knitting yarn. The count is a measure of fineness and is the length per gram (unit: meters). If the length of 1 gram is 10 meters, the count is 10, and in this case, the appropriate gauge number for the knitting machine is 10 gauge. Another measure of fineness is decitex, which is the weight per 10,000 meters (unit: grams), and the reciprocal of this is the count. As a result, if an attempt is made to increase the gauge number of the knitting machine to produce a dense knitted fabric, the knitting yarn must be made thinner, and the finished knitted fabric tends to be thinner.

[0031] A feature of knitted fabrics is that they can stretch and contract freely in all directions, compared to woven fabrics. This is also useful when adding cut resistance to textile products. In other words, when a sharp object hits the surface of a textile product and is dragged, the knitted fabric will deform for a while, and will not begin to cut until it has completely deformed. The lower the gauge number, the larger the stitches and the greater the amount of deformation, so the amount of synthetic fiber 4 (fineness) can be reduced. On the other hand, the higher the gauge number, the smaller the amount of deformation, so the amount of synthetic fiber 4 (fineness) needs to be increased, but there is a limit to the amount that can be knitted, and this tendency becomes particularly noticeable when the gauge number exceeds 15.

[0032] The TDM test is commonly used to evaluate the cut resistance of textile products. Details of the test method are described in the international standard ISO 13997 or the Japanese Industrial Standard JIST 8052. The cut resistance of textile fabrics is determined according to this test method. Cut-resistant work gloves, or cut-resistant gloves, are further graded based on the international standard ISO 23388 or the European standard EN 388:2016. Specifically, a cut resistance of 2 Newtons or more is Level A, 5 Newtons or more is Level B, 10 Newtons or more is Level C, 15 Newtons or more is Level D, 22 Newtons or more is Level E, and 30 Newtons or more is Level F. There are no grades above Level F, and Level F is the highest level. While achieving Level F is extremely difficult, achieving it provides users with a greater sense of security. Therefore, it is conceivable to increase the amount of reinforcing fibers to improve cut resistance, but increasing the amount of reinforcing fibers can have undesirable effects such as making the fabric stiffer, thicker, and heavier.

[0033] Cut resistance, also known as cut resistance, is an index of how difficult it is to cut something with a sharp object. As it is a cutting phenomenon, shear strength plays a major role. Shearing is when an object is cut by applying alternating forces from directly across the axial direction. Furthermore, according to knowledge in material mechanics, due to the maximum shear strain energy theory, shear strength and tensile strength are proportional to each other. This is important, as it indicates that something that is difficult to tear when pulled is also difficult to cut. While it is generally very difficult to measure shear strength, tensile strength can be measured relatively easily. Regardless of the proportionality constant, it is convenient to be able to use tensile strength as a substitute characteristic.

[0034] While it would be ideal to be able to measure the maximum tensile strength of the actual fineness of the synthetic fiber4 to be used, a more comprehensive approach is to use the tensile strength values ​​published by synthetic fiber manufacturers. For example, even if a fiber is called the same ultra-high molecular weight polyethylene fiber, published tensile strength values ​​do not necessarily match between manufacturers, and even within the same company, published tensile strength values ​​may differ depending on the brand, so it is important to determine this. Published tensile strength values ​​are the maximum tensile strength per fineness, and fineness is often measured in decitex. Therefore, the published tensile strength value can be multiplied by the actual fineness to determine the maximum tensile strength of the synthetic fiber among the reinforcing fibers, and then the cut resistance can be evaluated by comparing these values.

[0035] As mentioned above, the knitting density of a finished knitted fabric is determined by the gauge number of the knitting machine, but the gauge number of the knitting machine also indicates the number of knitting yarns within a certain range. When a sharp object hits the knitted fabric, the greater the number of knitting yarns, the more the load from the sharp object is dispersed, improving the cut resistance of the entire fabric. Therefore, by multiplying the maximum tensile strength of the bundle of chemical fibers 4, which are reinforcing fibers, by the gauge number, it is possible to consider the cut resistance contributed by the chemical fibers in the entire textile product.

[0036] Chemical fibers are also constantly being improved, and new ones with higher tensile strength than ever before are being released one after another. Higher tensile strength allows for a corresponding reduction in the fineness of the yarn used. However, as mentioned above, knitting is not possible unless the knitting yarn itself has a certain thickness (fineness). Furthermore, as the fabric becomes thinner, abrasion resistance decreases significantly. Therefore, the fineness of the knitting yarn cannot be reduced too much. The limit is about 250 decitex for knitting yarn, and about 150 decitex for the chemical fiber 4, which is the reinforcing fiber contained in the twisted yarn 2.

[0037] Hereinafter, the embodiments of the present invention will be described in more detail based on a number of samples that were actually produced. The configurations of the following samples are the same as those of twisted yarn 2 shown in FIG.

[0038] [Sample 1] Sample 1 consisted of a core yarn consisting of a single 18 μm diameter tungsten wire 3 and a bundle of chemical fibers 4 (278 decitex fineness) made of ultra-high molecular weight polyethylene fibers with a tensile strength of 31 centiNewtons / dtex. A 111 decitex polyester sheath yarn 5 was wound around the core yarn, and another 111 decitex polyester sheath yarn 5 was wound around the core yarn in the opposite direction to form a double-covered yarn, called twisted yarn 2. Gloves were knitted using this twisted yarn 2 on an 18-gauge knitting machine. Finally, the gloves were tested for cut strength using the TDM test described above, and the results are shown in Table 1. Similar results were obtained when the sheath yarn 5 was nylon yarn.

[0039] In Table 1, the maximum tensile strength (unit: N (Newton)) of the entire bundle of chemical fibers 4 made of ultra-high molecular weight polyethylene fibers was calculated by multiplying the tensile strength of one strand of chemical fiber 4 by the fineness of the bundle of chemical fibers 4. Then, the product of the maximum tensile strength of the entire bundle of chemical fibers 4 and the gauge number of the knitting machine was calculated.

[0040] [Samples 2-8] The tensile strength and fineness of the ultra-high molecular weight polyethylene fiber used as chemical fiber 4, and the gauge number of the knitting machine were as shown in Table 1, and gloves were knitted under the same conditions as Sample 1. The gloves were then tested for cutting strength in the TDM test, and the results are shown in Table 1.

[0041] [Sample 9] For Sample 9, twisted yarn 2 was prepared in the same manner as Sample 1, except that para-aramid was used as chemical fiber 4. Gloves were knitted using this twisted yarn 2 on a knitting machine with a gauge of 18. The gloves were then tested for cut strength in the TDM test described above, and the results are shown in Table 1. The tensile strength and fineness of the para-aramid used as chemical fiber 4 are also shown in Table 1. Para-aramid fiber has a higher density than ultra-high molecular weight polyethylene fiber, and therefore the effective cross-sectional area is reduced even with the same fineness. Furthermore, the amount of fiber can be increased accordingly when knitting a textile product, but the weight increases accordingly.

[0042] [Table 1]

[0043] From the results of Samples 1 to 9 shown in Table 1, the relationship between the product of the maximum tensile force of the entire bundle of chemical fibers 4 and the gauge number of the knitting machine and the cutting force was examined, and it was found that there is a linear relationship between this product and the cutting force. Furthermore, when comparing Samples 1 to 8 and Sample 9, which are made of different chemical fibers 4, there is also a linear relationship between the product of the maximum tensile force of the entire bundle of chemical fibers 4 and the gauge number of the knitting machine and the cutting force. Utilizing this linearity, the value of the product that results in a cutting force of 30 Newtons (Level F) can be calculated backward to be 1898 N. Therefore, by making the value of the product at least 1900 or more, the cutting force can be made 30 Newtons (Level F) or more.

[0044] It should be noted that the TDM test produces results with a large degree of variability, and so although the results may not be as predicted, it was found that the results do not deviate too significantly from the predictions.

[0045] As described above, the textile product of this embodiment includes a knitted fabric knitted on a knitting machine using twisted yarn 2 composed of a tungsten wire 3 having a wire diameter of 22 μm or less and a bundle of chemical fibers 4, which are reinforcing fibers, and the product of the maximum tensile strength of the entire bundle of chemical fibers 4 used in the twisted yarn 2 and the gauge number of the knitting machine is 1900 N or more.

[0046] By using a combination of tungsten wires 3 and chemical fibers 4 as reinforcing fibers to make twisted yarn 2, the amount of chemical fibers 4 used can be reduced compared to when twisted yarn is made only of chemical fibers 4 as reinforcing fibers, and the thickness of the knitted fabric made from the twisted yarn 2 can also be reduced. Furthermore, by using tungsten wires 3, the load applied during cutting is also distributed to the chemical fibers 4, synergistically improving the cut resistance of the textile product. Therefore, it is possible to realize a textile product with a thin fabric thickness without reducing cut resistance. In particular, it is possible to realize a textile product with high cut resistance, with a cut force of 30 Newtons (Level F) or more.

[0047] (Variation) Although the textile product according to the present invention has been described above based on the embodiment, the present invention is not limited to the above embodiment.

[0048] For example, in the above embodiment, the twisted yarn 2 is a covered yarn covered with a sheath yarn 5, but this is not limited thereto. Specifically, as shown in FIG. 3, the twisted yarn 2A may be a doubled-twisted yarn formed by twisting together a bundle of multiple tungsten wires 3 and a bundle of chemical fibers 4. A doubled-twisted yarn can be produced by a double-twisting process. Note that, although multiple tungsten wires 3 are used in FIG. 3, this is not limiting. A single tungsten wire 3 may also be used.

[0049] In the above embodiment, the entire glove 1 is made of knitted fabric, but this is not limiting. For example, part of the glove 1 may be made of knitted fabric. In other words, the glove 1 may include knitted fabric.

[0050] Furthermore, in the above embodiment, gloves 1 are used as an example of a textile product, but the technology of the present disclosure can be applied to textile products other than gloves. For example, textile products may be clothing, hats, socks, etc. Examples of clothing include, but are not limited to, general clothing such as blouses, shirts, trousers, jumpers, jackets, down wear, vests, jackets, anoraks, coats, raincoats, windbreakers, ski wear, and snowboard wear, as well as work clothes used in workplaces such as construction sites and factories. Furthermore, textile products are not limited to the above, but may also be tents, sleeping bags, bags, flags, etc.

[0051] In addition, the present disclosure also includes forms obtained by applying various modifications to the above-described embodiments that a person skilled in the art would conceive, and forms realized by arbitrarily combining the components and functions of the embodiments within the scope of the present disclosure. Furthermore, the present disclosure also includes any combination of two or more claims from the multiple claims set forth in the claims at the time of filing, provided that there is no technical contradiction. For example, when a dependent claim set forth in the claims at the time of filing is made into a multiple claim or multiple multiple claims that cite all of the superordinate claims within the scope of the technical contradiction, the present disclosure also includes all combinations of claims included in that multiple claim or multiple multiple multiple claim. [Explanation of symbols]

[0052] 1 glove 2. 2A twisted yarn 3 Tungsten wire 4. Chemical fibers 5 Sheath thread

Claims

1. The knitted fabric is knitted by a knitting machine using a twisted yarn made of a tungsten wire having a wire diameter of 22 μm or less and a bundle of chemical fibers as reinforcing fibers, The product of the maximum tensile strength of the entire bundle of chemical fibers used in the twisted yarn and the gauge number of the knitting machine is 1900 N or more. Textile products.

2. The maximum tensile strength of the entire bundle of chemical fibers is calculated by multiplying the tensile strength of one of the chemical fibers by the fineness of the bundle of chemical fibers. The textile product according to claim 1.

3. The gauge number of the knitting machine is 18 or more. The textile product according to claim 1 or 2.

4. The fineness of the chemical fiber is 150 decitex or more. The textile product according to claim 1 or 2.

5. The twisted yarn is a covering yarn, The twisted yarn has a sheath yarn wound around the tungsten wire and the bundle of chemical fibers. The textile product according to claim 1 or 2.

6. The twisted yarn is a double-twisted yarn obtained by twisting the tungsten wire and the bundle of chemical fibers together. The textile product according to claim 1 or 2.

7. The textile product is a cut-resistant work glove. The textile product according to claim 1 or 2.

Citation Information

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